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April 3, 2026ACS Photonics1 citations

Programmable Space-Time Diffraction

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LZLei ZhangMWT Materials (United States)YZYue ZhengHuanggang Normal UniversityXCXiao Qing ChenMWT Materials (United States)

Key Points

  • This research aims to explore time and space-time diffraction phenomena using a programmable metasurface in the microwave regime.
  • Conducted theoretical analyses and numerical simulations of diffraction behavior.
  • Fabricated a TRPM prototype with a 1 bit amplitude-programmable element.
  • Measured time diffraction phenomena in the frequency domain and space-time diffraction in the momentum-frequency domain.
  • Distinct time diffraction phenomena observed experimentally.
  • Space-time diffraction effects emerged through reconfiguring coding matrices.
  • Good agreement between experimental and numerical results indicates the feasibility of the approach.

Abstract

Diffraction is a fundamental wave phenomenon that describes the spreading of waves when they encounter an obstacle or aperture comparable to their wavelength. Beyond the conventional spatial diffraction, waves can also exhibit diffraction-like behavior in temporal and spatiotemporal domains. In microwave regime, the diffraction plays a crucial role in shaping electromagnetic fields; however, its time and space-time counterparts with reprogrammable characteristics remain largely unexplored. Here, we investigate the time and space-time diffraction in the microwave band using a transmission-reflection-integrated programmable metasurface (TRPM). The physical feasibility of time and space-time diffraction is first established by theoretical analyses and numerical simulations. To enable experimental realization, a 1 bit amplitude-programmable element capable of switching between the reflection and transmission modes is presented, from which a TRPM prototype is fabricated and measured. Experimental results demonstrate that distinct time diffraction phenomena are observed in the frequency domain, while space-time diffraction effects emerge in the momentum-frequency domain by appropriately reconfiguring the time and space-time coding matrices of TRPM. The good agreement between experimental and numerical results illustrates the feasibility and flexibility of the proposed TRPM in realizing the programmable space-time diffraction, highlighting its potential as a versatile platform to explore fundamental physics and exotic functions in space-time metamaterials and metasurfaces.

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Cite This Study

Zhang et al. (2026) studied this question.

synapsesocial.com/papers/69cf5f645a333a821460e8dahttps://doi.org/10.1021/acsphotonics.5c03117
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